Help Solving V(t) = e^{2t} - 12t^2+100

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The problem involves determining the rates at which water flows in and out of a tank described by the volume function V(t) = e2t - 12t2 + 100 for 0 ≤ t ≤ 3. To find when water is flowing out at the fastest rate, one must differentiate the volume function to obtain dV/dt, then solve for critical points by setting dV/dt to zero. The maximum and minimum rates of flow occur at these critical points or at the endpoints t = 0 and t = 3, where the derivative values are evaluated to determine the maximum flow rate.

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I need help with the following problem...

The volume (in gallons) of water in a tank at time t seconds is given by the function
V(t) = e^{2t} - 12t^2+100 where 0 \leq t \leq 3

a) when is the water flowing out of the tank at the fastest rate? At what rate is it flowing at this time?

b) When is the water flowing into the tank at the fastest rate? At what rate is it flowing at this time.

So to start this, will i take the derivative of the volume function and then plug in a value to find time T? :confused:
 
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Water is flowing in most quickly when the volume functions is increasing most quickly. So you'd need to maximize the rate of change of the volume, i.e. dV/dt. Water is flowing out most quickly when the volume function is decreasing most quickly, so you'd need to minimize the rate of change of the volume.

So first you differentiate V(t), then it's a simple maximization/minimization problem using y(t) = dV/dt. Maximize and minimize y(t).

--J
 
cool, thanks
 
Can someone help me with the max/min part? After i take the derivative...do i then plug in the two values i have been given (0 and 3?) I am a little confused on that part, thanks.
 
The question is asking for "when", which implies time. THus, take the derivatives, and solve for t when the derivative = 0. AFter you have found your values for t, then you will need to test whether the value is a maximum or a minimum.

(if you don't find a max or min. with these values, then the max or min is porbably either one of the endpoints (i.e, when t = 0 or 3)

Keep in mind that the values for t must be between 0 and 3.
 
Last edited:
so by simply plugging in the two values in the dv/dt function, i should have my max and min rate? Because when i plug in 3 to the V' function i get 2348.6, and thats...the rate of the water, but how do i know that's the max rate?
 
oh ok, you just edited your post, thanks
 
YES i think i got it...thanks to everyone who helped.
 

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